Yaping Chen, Kaichen Zeng, Yunxin Ye, Xinyi Sun, Ling Yan, Ziya Lao, Yifan Wu, Tao Luo, Li Yang, Lvhua Guo
Infected wounds require therapeutic materials that can control bacterial infection without aggravating oxidative tissue damage. Here, glutathione-derived carbon dots (GSH-CDs) were introduced during the formation of a cerium metal-organic framework (Ce MOF) through an in situ integration strategy to construct a carbon-dot-integrated Ce MOF nanozyme (Ce MOF-CD). Electronic-structure analyses supported interfacial electron redistribution from GSH-CDs toward Ce MOF, accompanied by changes in the local electronic environment and Ce3+/Ce4+ distribution of the Ce active centers. Ce MOF-CD exhibited a distinct pH-dependent redox catalytic preference, with oxidase-like catalysis favored under acidic conditions and superoxide dismutase-like activity becoming more pronounced near neutrality. Accordingly, Ce MOF-CD markedly reduced the viability of MRSA and E. coli and disrupted established biofilms under acidic conditions. Under near-neutral cellular conditions, it reduced intracellular oxidative stress, attenuated inflammatory activation, and promoted repair-associated macrophage polarization. In an MRSA-infected wound model, Ce MOF-CD reduced bacterial burden and local inflammation, promoted tissue reconstruction, and accelerated wound closure with favorable biosafety. Overall, GSH-CDs-mediated interfacial electronic regulation modulates the pH-dependent redox catalytic behavior of Ce MOF, enabling antibacterial activity to be coordinated with oxidative-stress regulation during infected wound healing.